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18 votes
Random samples of of outh bass and smallmouth bass were taken from a lake, and their lengths in millimeters) were deter mined. We wish to know if the mean standard length differs between the two species in this lake. The results were as follows:

Largemouth Bass Smallmouth Bass
x 164.8 272.8
s 96.4 40.0
n 97 125

User Ashish Kadam
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1 Answer

15 votes
15 votes

Answer:

Hence , the means of Largemouth Bass and Smallmouth Bass are significantly different.

Step-by-step expl;anation:

From the question we are told that:

Largemouth Bass:


\=x_1 =164.8


s_1=96.4


n_1=125

Smallmouth Bass:


\=x_2 =272.8


s_2=40


n_2=97

Assume


\alpha =0.05

Generally The hypothesis is given as

H_0: The Largemouth Bass and Smallmouth Bass are equal

H_1: The Largemouth Bass and Smallmouth Bass are not equal

Generally the equation for Test statistics is mathematically given by


T=frac{( \=x_2 - \=x_1 )}{\sqrt{(s^(1))/(n_1) + (s_1^(2))/(n_2)}}


T =\frac{(272.8 - 164.8)}{\sqrt{(96.4^(2))/(125) + (40^(2))/(97)}}


T=(108)/(9.530925)


T=11.33

Therefore

From table

Critical Value


T_(\alpha,n_2-1)


T_(0.05,96)=1.661

Conclude

Since 11.33 is greater that 1.661 we eject the null hypothesis that the means are the same.

Hence , the means of Largemouth Bass and Smallmouth Bass are significantly different.

User Rob Eyre
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